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Long-Stokes-Shift mScarlet3 as a Structural Marker for Two-Photon Imaging
Sangyu Xu1,2, Xianyuan Zhang2, King Yee Cheung2
1Institute of Molecular and Cell Biology (IMCB), A*STAR, Singapore.
Micropublication Biology
|August 1, 2026
Summary
We developed a new red fluorescent protein, LSSmScarlet3, for Drosophila two-photon imaging. This protein allows simultaneous visualization of neurophysiology and anatomy using a single laser, simplifying experimental setups.
Area of Science:
- Neuroscience
- Biophysics
- Genetics
Background:
- Two-photon imaging is crucial for monitoring neurophysiology using genetically encoded sensors.
- Incorporating fluorescent proteins aids in cell-type identification and motion detection.
- Existing red fluorescent proteins often necessitate a separate excitation laser, increasing equipment complexity.
Purpose of the Study:
- To develop a red fluorescent protein for simultaneous imaging with green sensors using a single laser.
- To reduce complexity and cost in two-photon microscopy setups.
- To enable anatomical context for functional neurophysiological data.
Main Methods:
- Creation of transgenic Drosophila expressing a long-Stokes-shift mScarlet variant (LSSmScarlet3).
- Characterization of excitation and emission spectra of LSSmScarlet3.
- In vitro and in vivo assessment of LSSmScarlet3 fluorescence at 920 nm.
Main Results:
- LSSmScarlet3 demonstrates robust fluorescence at 920 nm.
- Minimal channel crosstalk was observed when imaging alongside green sensors.
- Successful in vitro and in vivo imaging was achieved with a single 920-nm laser.
Conclusions:
- LSSmScarlet3 enables simultaneous functional and anatomical imaging in Drosophila.
- This method simplifies two-photon microscopy by reducing the need for multiple lasers.
- The approach integrates neurophysiological data with precise anatomical localization.
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